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Separators characteristics

Reverse osmosis membrane separations are governed by the properties of the membrane used in the process. These properties depend on the chemical nature of the membrane material, which is almost always a polymer, as well as its physical stmcture. Properties for the ideal RO membrane include low cost, resistance to chemical and microbial attack, mechanical and stmctural stabiHty over long operating periods and wide temperature ranges, and the desired separation characteristics for each particular system. However, few membranes satisfy all these criteria and so compromises must be made to select the best RO membrane available for each appHcation. Excellent discussions of RO membrane materials, preparation methods, and stmctures are available (8,13,16-21). [Pg.144]

An excellent review of composite RO and nanofiltration (NE) membranes is available (8). These thin-fHm, composite membranes consist of a thin polymer barrier layer formed on one or more porous support layers, which is almost always a different polymer from the surface layer. The surface layer determines the flux and separation characteristics of the membrane. The porous backing serves only as a support for the barrier layer and so has almost no effect on membrane transport properties. The barrier layer is extremely thin, thus allowing high water fluxes. The most important thin-fHm composite membranes are made by interfacial polymerization, a process in which a highly porous membrane, usually polysulfone, is coated with an aqueous solution of a polymer or monomer and then reacts with a cross-linking agent in a water-kniniscible solvent. [Pg.144]

Transport Models. Many mechanistic and mathematical models have been proposed to describe reverse osmosis membranes. Some of these descriptions rely on relatively simple concepts others are far more complex and require sophisticated solution techniques. Models that adequately describe the performance of RO membranes are important to the design of RO processes. Models that predict separation characteristics also minimize the number of experiments that must be performed to describe a particular system. Excellent reviews of membrane transport models and mechanisms are available (9,14,25-29). [Pg.146]

M. Williams, "Measurement and Mathematical Description of Separation Characteristics of Ha2ardous Organic Compounds with Reverse Osmosis Membranes," dissertation. University of Kentucky, Lexiagton, Ky., 1993. [Pg.158]

TABLE 18-11 Classification of Filters According to Duty and Slurry-Separation Characteristics ... [Pg.1723]

Type of equipment Suitable for duty specification f Required slurry-separation characteristics ... [Pg.1723]

The factors to consider in the selection of cross-flow filtration include the cross-flow velocity, the driving pressure, the separation characteristics of the membrane (permeability and pore size), size of particulates relative to the membrane pore dimensions, and the hydrodynamic conditions within the flow module. Again, since particle-particle and particle-membrane interactions are key, broth conditioning (ionic strength, pH, etc.) may be necessary to optimize performance. [Pg.2058]

Separation Ranges of PSS SDV Columns FIGURE 9.3 Separation characteristics of PSS SDV columns for organic eluents. [Pg.276]

Nonselective membranes can assist enantioselective processes, providing essential nonchiral separation characteristics and thus making a chiral separation based on enantioselectivity outside the membrane technically and economically feasible. For this purpose several configurations can be applied (i) liquid-liquid extraction based on hollow-fiber membrane fractionation (ii) liquid- membrane fractionation and (iii) micellar-enhanced ultrafiltration (MEUF). [Pg.138]

The thud step gives a polymer-rich phase forming the membrane, and a polymer-depleted phase forming the pores. The ultimate membrane structure results as a combination of phase separation and mass transfer, variation of the production conditions giving membranes with different separation characteristics. Most MF membranes have a systematic pore structure, and they can have porosity as high as 80%.11,12Figure 16.6 shows an atomic force microscope... [Pg.357]

Separation characteristics of Phenoxyacetic Acids in Fixed and Semi-Fluidized Beds... [Pg.513]

A were packed. They were individually calibrated. All three 3000 A columns showed similar peak separation characteristics for particle sizes between 312 nm and 5TQnm. However, peak broadening was much larger for one of the 3000 A 0olumns. This column was discarded. Of the remaining two 3000 A columns, one was subjected to the following ... [Pg.48]

Generally, the effectiveness of the separation is determined not by the membrane itself, but rather by the formation of a secondary or dynamic membrane caused by interactions of the solutes and particles with the membrane. The buildup of a gel layer on the surface of an ultrafiltration membrane owing to rejection of macromolecules can provide the primary separation characteristics of the membrane. Similarly, with colloidal suspensions, pore blocking and bridging of... [Pg.75]

This language is a bit different from our ordinary understanding of conduction and resistance, but it is the right approach for systems that are by their nature quantal, and that have the length scale separation characteristic of transport junctions. [Pg.15]

Young JM, Dunnill P, Pearce JD. Separation characteristics of liquid nematode cultures and the design of recovery operations. Biotech Prog. 2002 18 29-35. [Pg.378]

On the basis of the preceding discussion, it should be obvious that ultratrace elemental analysis can be performed without any major problems by atomic spectroscopy. A major disadvantage with elemental analysis is that it does not provide information on element speciation. Speciation has major significance since it can define whether the element can become bioavailable. For example, complexed iron will be metabolized more readily than unbound iron and the measure of total iron in the sample will not discriminate between the available and nonavailable forms. There are many other similar examples and analytical procedures that must be developed which will enable elemental speciation to be performed. Liquid chromatographic procedures (either ion-exchange, ion-pair, liquid-solid, or liquid-liquid chromatography) are the best methods to speciate samples since they can separate solutes on the basis of a number of parameters. Chromatographic separation can be used as part of the sample preparation step and the column effluent can be monitored with atomic spectroscopy. This mode of operation combines the excellent separation characteristics with the element selectivity of atomic spectroscopy. AAS with a flame as the atom reservoir or AES with an inductively coupled plasma have been used successfully to speciate various ultratrace elements. [Pg.251]

Co-chrumatogrophy - he chro imtography of a mixture of an analyte . id the reference < mpound to demonstrate identical separation characteristics. [Pg.101]


See other pages where Separators characteristics is mentioned: [Pg.104]    [Pg.144]    [Pg.152]    [Pg.207]    [Pg.474]    [Pg.1750]    [Pg.2057]    [Pg.2058]    [Pg.2058]    [Pg.471]    [Pg.117]    [Pg.128]    [Pg.75]    [Pg.76]    [Pg.431]    [Pg.545]    [Pg.697]    [Pg.699]    [Pg.742]    [Pg.629]    [Pg.1168]    [Pg.140]    [Pg.192]    [Pg.24]    [Pg.29]    [Pg.112]    [Pg.220]    [Pg.146]    [Pg.5]   
See also in sourсe #XX -- [ Pg.447 , Pg.447 , Pg.448 , Pg.448 ]




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